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微流控恒化器阵列及小体积分数补料以实现微生物的稳态培养。

Microchemostat array with small-volume fraction replenishment for steady-state microbial culture.

机构信息

Department of Electrical and Computer Engineering, Texas A&M University, College Station, TX 77843, USA.

出版信息

Lab Chip. 2013 Nov 7;13(21):4217-24. doi: 10.1039/c3lc50665g.

Abstract

A chemostat is a bioreactor in which microorganisms can be cultured at steady-state by controlling the rate of culture medium inflow and waste outflow, thus maintaining media composition over time. Even though many microbial studies could greatly benefit from studying microbes in steady-state conditions, high instrument cost, complexity, and large reagent consumption hamper the routine use of chemostats. Microfluidic-based chemostats (i.e. microchemostats) can operate with significantly smaller reagent consumption while providing accurate chemostatic conditions at orders of magnitude lower cost compared to conventional chemostats. Also, microchemostats have the potential to significantly increase the throughput by integrating arrays of microchemostats. We present a microchemostat array with a unique two-depth culture chamber design that enables small-volume fraction replenishment of culture medium as low as 1% per replenishment cycle in a 250 nl volume. A system having an array of 8 microchemostats on a 40 × 60 mm(2) footprint could be automatically operated in parallel by a single controller unit as a demonstration for potential high throughput microbial studies. The model organism, Saccharomyces cerevisiae, successfully reached a stable steady-state of different cell densities as a demonstration of the chemostatic functionality by programming the dilution rates. Chemostatic functionality of the system was further confirmed by quantifying the budding index as a function of dilution rate, a strong indicator of growth-dependent cell division. In addition, the small-volume fraction replenishment feature minimized the cell density fluctuation during the culture. The developed system provides a robust, low-cost, and higher throughput solution to furthering studies in microbial physiology.

摘要

恒化器是一种生物反应器,通过控制培养基的流入和废物的流出率,可以在稳态下培养微生物,从而随着时间的推移维持培养基的组成。尽管许多微生物研究可以从研究稳态条件下的微生物中受益,但仪器成本高、复杂性和试剂消耗大阻碍了恒化器的常规使用。基于微流控的恒化器(即微恒化器)可以以显著较小的试剂消耗运行,同时与传统的恒化器相比,以低得多的成本提供准确的恒化条件。此外,微恒化器具有通过集成微恒化器阵列显著增加通量的潜力。我们提出了一种具有独特双深度培养腔设计的微恒化器阵列,能够以低至 1%的每补充循环的小体积分数补充培养基,在 250 nl 的体积中。一个具有 8 个微恒化器的阵列的系统可以通过单个控制器单元自动并行操作,作为潜在高通量微生物研究的演示。作为恒化功能的演示,模式生物酿酒酵母成功地达到了不同细胞密度的稳定稳态,通过编程稀释率来实现。系统的恒化功能进一步通过量化作为稀释率函数的出芽指数得到确认,出芽指数是一种与生长相关的细胞分裂的强指示物。此外,小体积分数补充功能在培养过程中最小化了细胞密度波动。该开发的系统提供了一种稳健、低成本、更高通量的解决方案,以进一步研究微生物生理学。

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